In situ Raman reveals the critical role of Pd in electrocatalytic CO2 reduction to CH4 on Cu-based catalysts

催化作用 电化学 氧化还原 材料科学 选择性 拉曼光谱 原位 法拉第效率 纳米技术 电催化剂 二氧化碳电化学还原 分子 化学工程 化学 组合化学 无机化学 电极 一氧化碳 物理化学 有机化学 工程类 物理 光学
作者
Zi‐Yu Du,Kun Wang,Yimeng Xie,Yu Zhao,Zhengxin Qian,Si-Bo Li,Qing‐Na Zheng,Jing‐Hua Tian,Alexander V. Rudnev,Yue‐Jiao Zhang,Hua Zhang,Jian‐Feng Li
出处
期刊:Journal of Chemical Physics [American Institute of Physics]
卷期号:161 (2) 被引量:8
标识
DOI:10.1063/5.0213850
摘要

Electrocatalytic CO2 reduction reaction (CO2RR) for CH4 production presents a promising strategy to address carbon neutrality, and the incorporation of a second metal has been proven effective in enhancing catalyst performance. Nevertheless, there remains limited comprehension regarding the fundamental factors responsible for the improved performance. Herein, the critical role of Pd in electrocatalytic CO2 reduction to CH4 on Cu-based catalysts has been revealed at a molecular level using in situ surface-enhanced Raman spectroscopy (SERS). A "borrowing" SERS strategy has been developed by depositing Cu-Pd overlayers on plasmonic Au nanoparticles to achieve the in situ monitoring of the dynamic change of the intermediate during CO2RR. Electrochemical tests demonstrate that Pd incorporation significantly enhances selectivity toward CH4 production, and the Faradaic efficiency (FE) of CH4 is more than two times higher than that for the catalysts without Pd. The key intermediates, including *CO2-, *CO, and *OH, have been directly identified under CO2RR conditions, and their evolution with the electrochemical environments has been determined. It is found that Pd incorporation promotes the activation of both CO2 and H2O molecules and accelerates the formation of abundant active *CO and hydrogen species, thus enhancing the CH4 selectivity. This work offers fundamental insights into the understanding of the molecular mechanism of CO2RR and opens up possibilities for designing more efficient electrocatalysts.
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